Quasi-static modeling of a novel growing soft-continuum robot

被引:19
|
作者
Tutcu, Cem [1 ]
Baydere, Bora A. [1 ]
Talas, Seref K. [1 ]
Samur, Evren [1 ]
机构
[1] Bogazici Univ, Istanbul, Turkey
来源
关键词
modeling; soft; continuum; growing; robot; KINEMATICS; DESIGN; DEFLECTIONS; SYSTEM;
D O I
10.1177/0278364919893438
中图分类号
TP24 [机器人技术];
学科分类号
080202 ; 1405 ;
摘要
Soft-continuum robots attract researchers owing to their advantages over rigid-bodied robots such as adaptation of the flexible structure to tortuous environments, and compliant contact mechanics. The need for new modeling methods to attain precise control for such systems has emerged from the recent rapid progress in soft robotics. This article presents a quasi-static model for a growing soft-continuum robot that is propelled via thin-walled inflated tubes, and steered by the difference between tube lengths. Therefore, the robot shaft is modeled as a series of inflated beams under deformation. A quasi-static model coupled with a kinematic model is developed to accurately position the end effector while accounting for the inflated beam stiffness and end-effector loads. The proposed model calculates control parameters, namely tube lengths and tendon tensions required to maintain the end effector at a certain position. Tip deflection due to end-effector loading is calculated and kinematic model inputs are updated to correct positioning error caused by shaft deformation. The model is simulated for the soft-continuum robot moving on a path to show the change in model parameters for various end-effector positions. Results demonstrate the significance of including pressurized tube stiffness in the model for growing robots of similar type. Second, the need for tendons in addition to pneumatic actuation is emphasized for accurate positioning of the end effector under loading. The proposed model offers a potential method for simulation and control of similar growing soft-continuum robots presented in the literature.
引用
收藏
页码:86 / 98
页数:13
相关论文
共 50 条
  • [31] Atomistic-to-continuum convergence for quasi-static crack growth in brittle materials
    Friedrich, Manuel
    Seutter, Joscha
    MATHEMATICAL MODELS & METHODS IN APPLIED SCIENCES, 2025,
  • [32] Quasi-static and quasi-dynamic modeling of earthquake failure at intermediate scales
    Zöller, G
    Holschneider, M
    Ben-Zion, Y
    PURE AND APPLIED GEOPHYSICS, 2004, 161 (9-10) : 2103 - 2118
  • [33] Modelling of quasi-static motions for three-body mobile robot
    Chernousko, Felix L.
    Figurina, Tatiana Yu.
    IFAC PAPERSONLINE, 2015, 48 (01): : 834 - +
  • [34] NEW METHOD OF SOLUTION TO SOME QUASI-STATIC PROBLEMS OF NONLINEAR CONTINUUM MECHANICS
    POBEDRYA, BE
    DOKLADY AKADEMII NAUK SSSR, 1971, 197 (02): : 277 - &
  • [35] Quasi-static and dynamic nanoindentation of particle-reinforced soft composites
    Wang, Kaiqiang
    Gao, Wei
    Wang, Xingzhe
    He, Hongliang
    JOURNAL OF APPLIED POLYMER SCIENCE, 2017, 134 (10)
  • [36] Cohesive modeling of quasi-static fracture in functionally graded materials
    Kandula, Soma Sekhar V.
    Abanto-Bueno, Jorge
    Lambros, John
    Geubelle, Philippe H.
    JOURNAL OF APPLIED MECHANICS-TRANSACTIONS OF THE ASME, 2006, 73 (05): : 783 - 791
  • [37] An Improved Transistor Modeling Methodology Exploiting the Quasi-Static Approximation
    Jarndal, Anwar
    Crupi, Giovanni
    Raffo, Antonio
    Vadala, Valeria
    Vannini, Giorgio
    IEEE JOURNAL OF THE ELECTRON DEVICES SOCIETY, 2021, 9 : 378 - 386
  • [38] Shape Modeling of a Parallel Soft Panel Continuum Robot
    Li, Long
    Zhao, Yinjun
    Tian, Yingzhong
    Wang, Wenbin
    Chen, Wei
    Gao, Zenggui
    Lu, Yihao
    Xi, Fengfeng
    2018 IEEE INTERNATIONAL CONFERENCE ON ROBOTICS AND BIOMIMETICS (ROBIO), 2018, : 367 - 372
  • [39] Quasi-static modeling of an organic Schottky diode with trapped charge
    Sigdel, Jiwan
    Pieper, Ron
    Wondmagegn, Wudyalew
    Puttagunta, Vasu
    Satyala, Nikhil
    2010 42ND SOUTHEASTERN SYMPOSIUM ON SYSTEM THEORY (SSST), 2010,
  • [40] Modeling of Quasi-Static Floating-Gate Transistor Biosensors
    Thomas, Mathew S.
    Adrahtas, Demetra Z.
    Frisbie, C. Daniel
    Dorfman, Kevin D.
    ACS SENSORS, 2021, 6 (05): : 1910 - 1917